• Title/Summary/Keyword: Diterpenoid alkaloid

Search Result 5, Processing Time 0.022 seconds

Isolation and Oxidation Characteristics of Alkaloids of Aconitum volubile (가는줄돌쩌기 알칼로이드 성분의 분리 및 산화적 특성)

  • Heo, Kyong-Hee;Lee, Chung-Kyu
    • Korean Journal of Pharmacognosy
    • /
    • v.39 no.2
    • /
    • pp.127-134
    • /
    • 2008
  • From the under ground part of Aconitum volubile Pall. (Ranunculaceae),seven nor- or di-terpenoid alkaloids were isolated and identified by NMR spectra and mass spectrum. The alkaloids were three $C_{19}$-norditerpenoid alkaloids such as isotalatizidine, altaconitine and vilmorrianine A, and four $C_{20}$-diterpenoid alkaloids such as 12-epidehydronapelline, 12-epinapelline, songoramine and songorine. Some of the isolated diterpenoid alkaloids were subjected to oxidation reaction with active $MnO_2$ and oxoammonium salt. The results were C-12 oxidation(ketone formation) and N-dealkylation in veatchin-type and decomposition to non-alkaloidal compounds in atisine-type ajaconine.

Alkaloidal Constituents from Aconitum jaluense

  • Shim, Sang-Hee;Kim, Ju-Sun;Kang, Sam-Sik;Son, Kun-Ho;Bae, Ki-Hwan
    • Archives of Pharmacal Research
    • /
    • v.26 no.9
    • /
    • pp.709-715
    • /
    • 2003
  • Aconitum jaluense Komar. (Ranunculaceae) is one of the Aconitum plants growing in Korean peninsula. An investigation of the alkaloidal constituents of this species led to the isolation of seven $C_{19}$-norditerpenoid and a $C_{20}$-diterpenoid alkaloid. Three of them have been identified as neoline, mesaconitine, and hypaconitine, which were isolated from this plant collected from Mt. Bultasan in the north part. The other five alkaloids were determined as lipomesaconitine, lipohypaconitine, 15$\alpha$-hydroxyneoline, hokbusine A, and napelline, which have not been found in this plant. Structures of those alkaloids were determined on the basis of their spectral data. It is of interest to note that a comparison of the present work and the previous report showed some differences in the alkaloidal contents.

The Structural Characteristics of the Active Ingredients in Several 'Hot and Warm' Herbal Medicine (한약(韓藥)의 온열성약(溫熱性藥)의 성분(成分)과 화학적(化學的) 특성(特性)에 관(關)한 연구(硏究))

  • Shin, Joon-Shik;Ahn, Duk-Kyun;Park, Ho-Koon
    • The Journal of Korean Medicine
    • /
    • v.20 no.1 s.37
    • /
    • pp.1-10
    • /
    • 1999
  • 한약(韓藥)의 효능(效能)은 약성(藥性)에 의해 분류(分類)되고 질병(疾病)을 치료(治療)하며 예방(豫防)하는 작용(作用)을 한다. 그러나 약성(藥性) 이론(理論)의 문헌(文獻)과 임상연구(臨床硏究)는 비교적 많지만 상대적으로 실험연구(實驗硏究)는 일부분에 불과하여 효능(效能)을 입증(立證)하는데 어려움이 많다. 이에 저자(著者)는 온열성약(溫熱性藥)들이 지니고 있는 유효(有效) 성분(成分)들을 조사(調査)하고 이 온열성약(溫熱性藥)에 함유(含有)되어 있는 유효(有效) 성분(成分)들의 구조적(構造的)인 특성(特性)과 화학적(化學的)인 공통점(共通點)을 찾아 온열성약(溫熱性藥)의 분류(分類)에 대한 일반적(一般的)인 기준(基準)을 제시(提示)하고자 하였다. 그 결과 각각의 열성약(熱性藥)과 온성약(溫性藥)들이 함유(含有)하고 있는 유효(有效) 성분(成分)간의 구조적(構造的)인 공통점(共通點)을 찾아내었으며 구조적(構造的)인 공통점(共通點)으로부터 다음과 같은 결론(結論)을 얻었다. 1. 열성약(熱性藥) 중에서 강(强)한 독성(毒性)을 나타내는 부자(附子)와 초오(草烏)의 효능을 나타내는 유효 성분(成分)들은 C19-diterpenoid alkaloid과 C20-diterpenoid alkaloid 계열의 구조(構造)를 지닌 화합물들로 구성(構成)되어 있다. 이 디테르펜 알카로이드(diterpene alkaloid)들의 경우 고리의 구조(構造)가 aconitane(1), hetisan(16)과 7,20-cycloveatchane(17)의 기본골격(基本骨格)을 지니고 있으며, 이 두 가지 기본구조(基本構造)의 공통점(共通點)은 A 고리에 질소를 포함한 2-azabicyclo-[3.3.1]-nonanyl의 부분구조를 갖고 있으며, 이 부분 구조는 자연계에 존재하는 tropane alkaloid들의 기본구조(基本構造)와 유사하다. Tropane alkaloid들은 중추신경계에 작용하는 약물들로 알려져 있으며, tropane alkaloid는 일반적으로 anatoxin a(171)와 같이 강(强)한 독성(毒性)을 나타내며, 부자(附子)와 초오(草烏)가 지니고 있는 강한 독성(毒性)은 바로 2-azabicyclo-[3.3.1]-nonanyl 구조(構造)에 기인하는 것으로 추정할 수 있다. 2. 육계(肉桂)에 주성분으로 함유(含有)되어 있는 cinncassiol(47) 화합물(化合物)들은 분자 내에 bicyclo-[4.3.0]-nonanyl과 bicyclo-[3.3.0]-octanyl의 기본 혹은 부분 구조를 지니고 있다. 3. Cinncassiol(47) 화합물(化合物)들은 강(强)한 항균력(抗菌力)을 보이고 있는데, cinncassiol(47) 화합물들이 지니고 있는 구조적인 특성인 bicyclo-[4.3.0]-nonanyl과 bicyclo-[3.3.0]-octanyl의 기본 혹은 부분 고리구조는 sesquiterpenoid 화합물(化合物)들과 diterpenoid 화합물(化合物)들 중에서 많이 발견되며, 이러한 구조(構造)를 지니고 있는 sesquiterpenoid 화합물(化合物)과 diterpenoid 화합물(化合物)들도 좋은 항균력(抗菌力)을 보이고 있다. 이러한 공통(共通)된 구조상(構造上)의 유사점(類似點)이 항균력(抗菌力)을 나타내는 지표로서 활용 가능성이 기대된다. 4. 온성약(溫性藥)의 경우, 백지(白芷)의 coumarin(39) 화합물(化合物)들과 furocoumarin(61) 화합물(化合物)들, 건량(乾量)의 gingerol(87), shogaol(93), gingerdiol(95) 등과 capsaicin(102), 마황(麻黃)의 ephedrine(124) 계렬(系列) 화합물(化合物)들, 세신(細辛)의 methyleugenol(136)과 asaricin(137)의 구조(構造)에서 발견(發見)할 수 있는 공통적(共通的)인 요소는 phenolic 또는 methoxyphenyl의 공통구조를 지니고 있다. 온성약(溫性藥)의 유효성분들은 공통적으로 phenolic aromatic 화합물(化合物)을 함유(含有)하고 있다. 따라서, 열성약(熱性藥)과 온성약(溫性藥)은 주성분(主成分)들의 분포(分布)가 각기 다르며, 독성(毒性)을 나타내는 열성약(熱性藥)은 2-azabicyclo-[3.3.1]-nonanyl 구조(構造)를 지니고 있고, 육계(肉桂)와 같은 항균력(抗菌力)을 지니는 약물(藥物)은 bicyclo-[3.3.0]-octanyl 또는 bicyclo-[4.3.0]-nonanyl의 구조(構造)를 지닌다. 백지(白芷), 마황(麻黃), 세신(細辛) 등에서 볼 수 있듯이 온성약(溫性藥)은 benzene 구조(構造)를 함유(含有)하는 phenolic aromatic 화합물(化合物)들이 주종을 이룬다.

  • PDF

Alkaloid Constituents of Aconitum triphyllum NAKAI and their Seasonal Variation (세잎돌쩌기의 알칼로이드 성분과 함량의 계절적 변화)

  • Lee, Jin-Woo;Park, Jong-Hee;Kim, Hye-Kyung;Lee, Chung-Kyu
    • Korean Journal of Pharmacognosy
    • /
    • v.35 no.2 s.137
    • /
    • pp.128-133
    • /
    • 2004
  • Aconitum triphyllum Nakai, the Korean spontaneous perennial herb, is one of the most important materials of oriental drug Fu-zi(aconite) and has long been used as cardiotonic for arrhythmia, analgesic and antiinflammatory drug in oriental countries. Although the plant is widely used for the preparation of aconite, the composition and amount of the toxic aconitine type alkaloids have not studied so far. As the preliminary study for seasonal variation of major constituents in mother tuber and daughter tuber of the plant, the authors tried to elucidate phytochemical characteristics of $C_{19}-diterpenoid alkaloids by $^{13}C-NMR$ spectra and seasonal variation of the alkaloidal contents by high performance liquid chromatography.

Pathogen, Insect and Weed Control Effects of Secondary Metabolites from Plants (식물유래 2차 대사물질의 병충해 및 잡초 방제효과)

  • Kim, Jong-Bum
    • Applied Biological Chemistry
    • /
    • v.48 no.1
    • /
    • pp.1-15
    • /
    • 2005
  • Pathogens, insects and weeds have significantly reduced agricultural productivity. Thus, to increase the productivity, synthetic agricultural chemicals have been overused. However, these synthetic compounds that are different from natural products cannot be broken down easily in natural systems, causing the destruction of soil quality and agricultural environments and the gradually difficulty in continuous agriculture. Now agriculture is faced with the various problems of minimizing the damage in agricultural environments, securing the safety of human health, while simultaneously increasing agricultural productivity. Meanwhile, plants produce secondary metabolites to protect themselves from external invaders and to secure their region for survival. Plants infected with pathogens produce antibiotics phytoalexin; monocotyledonous plants produce flavonoids and diterpenoids phytoalexins, and dicotylodoneous plant, despite of infected pathogens, produce family-specific phytoalexin such as flavonoids in Leguminosae, indole derivatives in Cruciferae, sesquitepenoids in Solanaceae, coumarins in Umbelliferae, making the plant resistant to specific pathogen. Growth inhibitor or antifeedant substances to insects are terpenoids pyrethrin, azadirachtin, limonin, cedrelanoid, toosendanin and fraxinellone/dictamnine, and terpenoid-alkaloid mixed compounds sesquiterpene pyridine and norditerpenoids, and azepine-, amide-, loline-, stemofoline-, pyrrolizidine-alkaloids and so on. Also plants produces the substances to inhibit other plant growths to secure the regions for plant itself, which is including terpenoids essential oil and sesquiterpene lactone, and additionally, benzoxazinoids, glucosinolate, quassinoid, cyanogenic glycoside, saponin, sorgolennone, juglone and lots of other different of secondary metabolites. Hence, phytoalexin, an antibiotic compound produced by plants infected with pathogens, can be employed for pathogen control. Terpenoids and alkaloids inhibiting insect growth can be utilized for insect control. Allelochemicals, a compound released from a certain plant to hinder the growth of other plants for their survival, can be also used directly as a herbicides for weed control as well. Therefore, the use of the natural secondary metabolites for pest control might be one of the alternatives for environmentally friendly agriculture. However, the natural substances are destroyed easily causing low the pest-control efficacy, and also there is the limitation to producing the substances using plant cell. In the future, effects should be made to try to find the secondary metabolites with good pest-control effect and no harmful to human health. Also the biosynthetic pathways of secondary metabolites have to be elucidated continuously, and the metabolic engineering should be applied to improve transgenics having the resistance to specific pest.